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Related Experiment Video

Updated: Sep 17, 2025

Evidence-based Knowledge Synthesis and Hypothesis Validation: Navigating Biomedical Knowledge Bases via Explainable AI and Agentic Systems
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SyRACT: zero-shot biomedical document-level relation extraction with synergistic RAG and CoT.

Xin Dong1, Di Zhao1,2, Jiana Meng1

  • 1School of Computer Science and Engineering, Dalian Minzu University, Liaoning 116600, China.

Bioinformatics (Oxford, England)
|June 27, 2025
PubMed
Summary

The SyRACT framework enhances biomedical relation extraction by reframing tasks for large language models (LLMs), using PubMed data, and employing Chain of Thought reasoning, significantly improving accuracy.

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Area of Science:

  • Biomedical Informatics
  • Natural Language Processing

Background:

  • Large language models (LLMs) offer new possibilities for biomedical document-level relation extraction (BioDocRE).
  • However, LLMs struggle with hallucination, limited reasoning, and lack of interpretability in BioDocRE tasks.

Purpose of the Study:

  • To introduce the SyRACT framework for high-precision BioDocRE.
  • To address challenges of hallucination, reasoning, and interpretability in LLM-based BioDocRE.

Main Methods:

  • Reframed BioDocRE as a question-answering task for better LLM alignment.
  • Utilized a PubMed-derived external database to supply reliable contextual information and reduce hallucinations.
  • Developed a specific Chain of Thought (CoT) strategy for BioDocRE to improve reasoning and interpretability.

Main Results:

  • SyRACT significantly improved F1 scores across three datasets (CDR, GDA, ADE).
  • Improvements were 11.04% (CDR), 9.10% (GDA), and 41.00% (ADE) compared to standard LLM prompting (DocRE method).

Conclusions:

  • The SyRACT framework offers a robust solution for high-precision BioDocRE.
  • SyRACT effectively mitigates LLM limitations, enhancing both performance and interpretability in biomedical relation extraction.